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Using kernelized partial canonical correlation analysis to study directly coupled side chains and allostery in small G proteins

机译:使用核化部分典范相关分析来研究小G蛋白的直接偶联侧链和变构

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Motivation: Inferring structural dependencies among a protein's side chains helps us understand their coupled motions. It is known that coupled fluctuations can reveal pathways of communication used for information propagation in a molecule. Side-chain conformations are commonly represented by multivariate angular variables, but existing partial correlation methods that can be applied to this inference task are not capable of handling multivariate angular data. We propose a novel method to infer direct couplings from this type of data, and show that this method is useful for identifying functional regions and their interactions in allosteric proteins.
机译:动机:推断蛋白质侧链之间的结构依赖性有助于我们理解其耦合运动。众所周知,耦合波动可以揭示分子中信息传播所用的通信路径。侧链构型通常由多元角度变量表示,但是可应用于此推理任务的现有部分相关方法无法处理多元角度数据。我们提出了一种从这种类型的数据推断直接偶联的新方法,并表明该方法可用于识别功能区及其在变构蛋白中的相互作用。

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